[Effect of adrenaline on vagus nerve reflexes]. 1999

Y Masaki, and T Furukawa, and M Watanabe, and G Ichikawa
Department of Otorhinolaryngology, Juntendo University School of Medicine, Tokyo.

BACKGROUND Dizziness or syncope may occur during treatment of nasal disease. These symptoms are considered imputable to the vagovagal reflex, which is partly involved in neurogenic syncope. In response to trigeminal nerve stimulation, the vagus nerve causes a sudden fall in heart rate and blood pressure. Elevation in blood adrenaline level during pain or tension was noted, and its effects on vagovagal reflexes were studied. METHODS Ten cats were used in the experiment. The vagus nerve was exposed on the right side of the neck by making an incision in the trachea, and a platinum electrode was attached to the vagus nerve on nerve's distal side. The head was tilted a 30 degree angle. The cats were divided into control and adrenaline-treated groups, and changes in cerebral blood flow, heart rate, and arterial pressure were compared between the two groups after electric stimulation of the vagus nerve. Cerebral blood flow was measured by the hydrogen clearance method. 1) Control group The vagus nerve was electrically stimulated for 1 minute. 2) Adrenaline-treated group The vagus nerve was electrically stimulated for 1 minute following 30 seconds of intravenous administration of adrenaline. RESULTS Cerebral blood flow was significantly decreased in both the control and adrenaline-treated groups after electric stimulation, but the decrease was significantly greater in the latter group at all sites of measurement. Whereas heart rate and arterial pressure were significantly decreased in the control group, these variables in the adrenaline-treated group showed no significant change despite the greater decrease in cerebral blood flow. CONCLUSIONS Heart rate, blood pressure, and cerebral blood flow were all significantly decreased after electric stimulation of the vagus nerve. These changes were considered owing to a fall in blood pressure due to vasodilation resulting from bradycardia and a relative decrease in sympathetic nervous tension resulting from electric stimulation. On the other hand, in the adrenaline-treated group, neither heart rate nor blood pressure showed any significant change, but cerebral blood flow was significantly decreased at all sites of measurement despite an adrenaline load. This contradictory results may be accounted for by the powerful beta 2-activity of adrenaline. The greater decrease in cerebral blood flow in the adrenaline-treated than in the control group can be attributed to decreased peripheral vascular resistance by its beta 2-activity. In the field of otorhinolaryngology the trigeminal region is often involved in the treatment of nasal disorders so that vagovagal reflexes are often encountered. The results of this study counsels caution in the treatment involving the trigeminal region.

UI MeSH Term Description Entries
D012018 Reflex An involuntary movement or exercise of function in a part, excited in response to a stimulus applied to the periphery and transmitted to the brain or spinal cord.
D002415 Cats The domestic cat, Felis catus, of the carnivore family FELIDAE, comprising over 30 different breeds. The domestic cat is descended primarily from the wild cat of Africa and extreme southwestern Asia. Though probably present in towns in Palestine as long ago as 7000 years, actual domestication occurred in Egypt about 4000 years ago. (From Walker's Mammals of the World, 6th ed, p801) Felis catus,Felis domesticus,Domestic Cats,Felis domestica,Felis sylvestris catus,Cat,Cat, Domestic,Cats, Domestic,Domestic Cat
D002560 Cerebrovascular Circulation The circulation of blood through the BLOOD VESSELS of the BRAIN. Brain Blood Flow,Regional Cerebral Blood Flow,Cerebral Blood Flow,Cerebral Circulation,Cerebral Perfusion Pressure,Circulation, Cerebrovascular,Blood Flow, Brain,Blood Flow, Cerebral,Brain Blood Flows,Cerebral Blood Flows,Cerebral Circulations,Cerebral Perfusion Pressures,Circulation, Cerebral,Flow, Brain Blood,Flow, Cerebral Blood,Perfusion Pressure, Cerebral,Pressure, Cerebral Perfusion
D004558 Electric Stimulation Use of electric potential or currents to elicit biological responses. Stimulation, Electric,Electrical Stimulation,Electric Stimulations,Electrical Stimulations,Stimulation, Electrical,Stimulations, Electric,Stimulations, Electrical
D004837 Epinephrine The active sympathomimetic hormone from the ADRENAL MEDULLA. It stimulates both the alpha- and beta- adrenergic systems, causes systemic VASOCONSTRICTION and gastrointestinal relaxation, stimulates the HEART, and dilates BRONCHI and cerebral vessels. It is used in ASTHMA and CARDIAC FAILURE and to delay absorption of local ANESTHETICS. Adrenaline,4-(1-Hydroxy-2-(methylamino)ethyl)-1,2-benzenediol,Adrenaline Acid Tartrate,Adrenaline Bitartrate,Adrenaline Hydrochloride,Epifrin,Epinephrine Acetate,Epinephrine Bitartrate,Epinephrine Hydrochloride,Epinephrine Hydrogen Tartrate,Epitrate,Lyophrin,Medihaler-Epi,Acetate, Epinephrine
D000318 Adrenergic beta-Agonists Drugs that selectively bind to and activate beta-adrenergic receptors. Adrenergic beta-Receptor Agonists,beta-Adrenergic Agonists,beta-Adrenergic Receptor Agonists,Adrenergic beta-Agonist,Adrenergic beta-Receptor Agonist,Betamimetics,Receptor Agonists, beta-Adrenergic,Receptors Agonists, Adrenergic beta,beta-Adrenergic Agonist,beta-Adrenergic Receptor Agonist,Adrenergic beta Agonist,Adrenergic beta Agonists,Adrenergic beta Receptor Agonist,Adrenergic beta Receptor Agonists,Agonist, Adrenergic beta-Receptor,Agonist, beta-Adrenergic,Agonist, beta-Adrenergic Receptor,Agonists, Adrenergic beta-Receptor,Agonists, beta-Adrenergic,Agonists, beta-Adrenergic Receptor,Receptor Agonist, beta-Adrenergic,Receptor Agonists, beta Adrenergic,beta Adrenergic Agonist,beta Adrenergic Agonists,beta Adrenergic Receptor Agonist,beta Adrenergic Receptor Agonists,beta-Agonist, Adrenergic,beta-Agonists, Adrenergic,beta-Receptor Agonist, Adrenergic,beta-Receptor Agonists, Adrenergic
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D014276 Trigeminal Nerve The 5th and largest cranial nerve. The trigeminal nerve is a mixed motor and sensory nerve. The larger sensory part forms the ophthalmic, mandibular, and maxillary nerves which carry afferents sensitive to external or internal stimuli from the skin, muscles, and joints of the face and mouth and from the teeth. Most of these fibers originate from cells of the TRIGEMINAL GANGLION and project to the TRIGEMINAL NUCLEUS of the brain stem. The smaller motor part arises from the brain stem trigeminal motor nucleus and innervates the muscles of mastication. Cranial Nerve V,Fifth Cranial Nerve,Nerve V,Nervus Trigeminus,Cranial Nerve, Fifth,Fifth Cranial Nerves,Nerve V, Cranial,Nerve Vs,Nerve, Fifth Cranial,Nerve, Trigeminal,Trigeminal Nerves,Trigeminus, Nervus
D014630 Vagus Nerve The 10th cranial nerve. The vagus is a mixed nerve which contains somatic afferents (from skin in back of the ear and the external auditory meatus), visceral afferents (from the pharynx, larynx, thorax, and abdomen), parasympathetic efferents (to the thorax and abdomen), and efferents to striated muscle (of the larynx and pharynx). Cranial Nerve X,Pneumogastric Nerve,Tenth Cranial Nerve,Nerve X,Nervus Vagus,Cranial Nerve, Tenth,Cranial Nerves, Tenth,Nerve X, Cranial,Nerve Xs,Nerve, Pneumogastric,Nerve, Tenth Cranial,Nerve, Vagus,Nerves, Pneumogastric,Nerves, Tenth Cranial,Nerves, Vagus,Pneumogastric Nerves,Tenth Cranial Nerves,Vagus Nerves,Vagus, Nervus
D058666 Adrenergic beta-2 Receptor Agonists Compounds bind to and activate ADRENERGIC BETA-2 RECEPTORS. Adrenergic beta-2 Agonists,Adrenergic beta-2 Receptor Agonist,Adrenergic beta2-Agonists,Adrenergic beta 2 Agonists,Adrenergic beta 2 Receptor Agonist,Adrenergic beta 2 Receptor Agonists,Adrenergic beta2 Agonists,Agonists, Adrenergic beta-2,beta-2 Agonists, Adrenergic,beta2-Agonists, Adrenergic

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